Key result
Intracellular single-domain antibodies prevent and reduce PABPN1 aggregates in an OPMD cellular model.
Intracellular expression of single-domain antibodies (VHH) can prevent and reduce PABPN1 protein aggregation in a cellular model of OPMD, suggesting a potential therapeutic approach for protein aggregation disorders.
May support intracellular VHH therapy for OPMD protein aggregation; leaves open in vivo efficacy and clinical translation.
Oculopharyngeal muscular dystrophy (OPMD) belongs to the group of protein aggregation disorders and is caused by extensions of the N-terminal polyalanine stretch of the nuclear polyA-binding protein 1 (PABPN1). The presence of PABPN1-containing intranuclear aggregates in skeletal muscle is unique for OPMD and is also observed in transgenic mouse and cell models for OPMD. These models consistently support a direct role for the protein aggregation in OPMD pathogenesis. We have isolated and characterized a diverse panel of single-domain antibody reagents (VHH), recognizing different epitopes in PABPN1. The antibody reagents specifically detect endogenous PABPN1 in cell lysates on western blot and label PABPN1 in cultured cells and muscle sections. When expressed intracellularly as intrabodies in a cellular model for OPMD, aggregation of PABPN1 was prevented in a dose-dependent manner. More importantly yet, these intrabodies could also reduce the presence of already existing aggregates. Given the domain specificity of VHH-mediated aggregation interference, this approach at least allows the definition of the nucleation kernel in aggregation-prone proteins, thus facilitating etiological insight into this and other protein aggregation disorders, and ultimately, it may well provide useful therapeutic agents.
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Verheesen et al. (2005) studied Oculopharyngeal muscular dystrophy (OPMD). Single-domain intracellular antibody (VHH) against PABPN1 was evaluated on Aggregation of PABPN1. Intracellular expression of single-domain antibodies against PABPN1 prevented its aggregation in a dose-dependent manner and reduced existing aggregates in a cellular model of OPMD.
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